Literature DB >> 34854178

Adaptive strategies of sponges to deoxygenated oceans.

Valerio Micaroni1, Francesca Strano1, Rob McAllen2, Lisa Woods3, John Turner4, Luke Harman2, James J Bell1.   

Abstract

Ocean deoxygenation is one of the major consequences of climate change. In coastal waters, this process can be exacerbated by eutrophication, which is contributing to an alarming increase in the so-called 'dead zones' globally. Despite its severity, the effect of reduced dissolved oxygen has only been studied for a very limited number of organisms, compared to other climate change impacts such as ocean acidification and warming. Here, we experimentally assessed the response of sponges to moderate and severe simulated hypoxic events. We ran three laboratory experiments on four species from two different temperate oceans (NE Atlantic and SW Pacific). Sponges were exposed to a total of five hypoxic treatments, with increasing severity (3.3, 1.6, 0.5, 0.4 and 0.13 mg O2  L-1 , over 7-12-days). We found that sponges are generally very tolerant of hypoxia. All the sponges survived in the experimental conditions, except Polymastia crocea, which showed significant mortality at the lowest oxygen concentration (0.13 mg O2  L-1 , lethal median time: 286 h). In all species except Suberites carnosus, hypoxic conditions do not significantly affect respiration rate down to 0.4 mg O2  L-1 , showing that sponges can uptake oxygen at very low concentrations in the surrounding environment. Importantly, sponges displayed species-specific phenotypic modifications in response to the hypoxic treatments, including physiological, morphological and behavioural changes. This phenotypic plasticity likely represents an adaptive strategy to live in reduced or low oxygen water. Our results also show that a single sponge species (i.e., Suberites australiensis) can display different strategies at different oxygen concentrations. Compared to other sessile organisms, sponges generally showed higher tolerance to hypoxia, suggesting that sponges could be favoured and survive in future deoxygenated oceans.
© 2021 John Wiley & Sons Ltd.

Entities:  

Keywords:  Porifera; climate change; dead zones; eutrophication; evolution; hypoxic events; marine benthic hypoxia; oxygen depletion; phenotypic plasticity; sessile organisms

Mesh:

Year:  2021        PMID: 34854178     DOI: 10.1111/gcb.16013

Source DB:  PubMed          Journal:  Glob Chang Biol        ISSN: 1354-1013            Impact factor:   10.863


  1 in total

1.  Adaptive specialization of a unique sponge body from the Cambrian Qingjiang biota.

Authors:  Hao Yun; Cui Luo; Chao Chang; Luoyang Li; Joachim Reitner; Xingliang Zhang
Journal:  Proc Biol Sci       Date:  2022-06-15       Impact factor: 5.530

  1 in total

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